Jaafar Khaled, Maria Kopsida, Tania Payo‐Serafín, Sofi Sennefelt Nyman, Fredrik Rorsman, Charlotte Barbier, Hans Lennernäs, Markus Sjöblom, Femke Heindryckx
Endoplasmic reticulum (ER) stress contributes to hepatocellular carcinoma (HCC) progression and promotes the development of a pro-tumorigenic microenvironment. Here, we demonstrate that selective inhibition of the ER-stress sensor PERK using AMG-PERK substantially restrains tumor development when administered during early carcinogenesis in a chemically induced HCC model. PERK inhibition reduced tumor burden, proliferation, and cell viability in vivo, and impaired the growth of HCC cells and patient-derived organoids in vitro. In parallel, AMG-PERK markedly reduced stromal activation, fibrosis, and inflammatory signaling within the tumor microenvironment. Mechanistic analyses indicated that ER-stress enhances tumor-stromal communication in part through increased secretion of the glycoprotein GP73, which can activate hepatic stellate cells via GRP78-dependent signaling. Blocking PERK or using GRP78-targeting antibodies reduced stellate cell activation and fibrogenic responses. Single-cell RNA sequencing and patient biopsies showed that PERK/EIF2AK3 and GP73/GOLM1 are upregulated in malignant hepatocytes and associated with poor clinical outcomes. Transcriptomic profiling further revealed that ER-stress drives oncogenic programs, including MYC signaling, epithelial-to-mesenchymal transition, and inflammatory pathway activation, all of which were affected by pharmacological PERK inhibition. Together, these findings identify PERK signaling as a potential driver of malignant progression and microenvironmental remodeling in HCC and establish PERK inhibition as a promising therapeutic strategy to target both tumor cells and their stromal interactions during the initial stages of hepatocarcinogenesis.